40

Say I have a Spark DF that I want to save to disk a CSV file. In Spark 2.0.0+, one can convert DataFrame(DataSet[Rows]) as a DataFrameWriter and use the .csv method to write the file.

The function is defined as

def csv(path: String): Unit
    path : the location/folder name and not the file name.

Spark stores the csv file at the location specified by creating CSV files with name - part-*.csv.

Is there a way to save the CSV with specified filename instead of part-*.csv ? Or possible to specify prefix to instead of part-r ?

Code :

df.coalesce(1).write.csv("sample_path")

Current Output :

sample_path
|
+-- part-r-00000.csv

Desired Output :

sample_path
|
+-- my_file.csv

Note : The coalesce function is used to output a single file and the executor has enough memory to collect the DF without memory error.

1
  • Unfortunately I cannot answer here, so for java users: val fs = FileSystem.get(spark.sparkContext().hadoopConfiguration()); File dir = new File(System.getProperty("user.dir") + "/my.csv/"); File[] files = dir.listFiles((d, name) -> name.endsWith(".csv")); fs.rename(new Path(files[0].toURI()), new Path(System.getProperty("user.dir") + "/csvDirectory/newData.csv")); fs.delete(new Path(System.getProperty("user.dir") + "/my.csv/"), true);
    – Michael B
    Jul 20 '20 at 7:43
44

It's not possible to do it directly in Spark's save

Spark uses Hadoop File Format, which requires data to be partitioned - that's why you have part- files. You can easily change filename after processing just like in this question

In Scala it will look like:

import org.apache.hadoop.fs._
val fs = FileSystem.get(sc.hadoopConfiguration)
val file = fs.globStatus(new Path("path/file.csv/part*"))(0).getPath().getName()

fs.rename(new Path("csvDirectory/" + file), new Path("mydata.csv"))
fs.delete(new Path("mydata.csv-temp"), true)

or just:

import org.apache.hadoop.fs._
val fs = FileSystem.get(sc.hadoopConfiguration)
fs.rename(new Path("csvDirectory/data.csv/part-0000"), new Path("csvDirectory/newData.csv"))

Edit: As mentioned in comments, you can also write your own OutputFormat, please see documents for information about this approach to set file name

8
  • @eliasah Didn't know it. But stil it's not out of the box in Spark
    – T. Gawęda
    Feb 3 '17 at 13:22
  • 1
    However good point, I will edit my answer later to show this possibility :)
    – T. Gawęda
    Feb 3 '17 at 13:25
  • it's always good to remind spark users that there is an underlying hadoop/hdfs layer
    – eliasah
    Feb 3 '17 at 13:28
  • 2
    Thanks! consider these changes val file = fs.globStatus(new Path(s"$sinkDir/part*"))(0).getPath() fs.rename(file, new Path(s"$sinkDir/gremlin.fastq")) Apr 3 '19 at 11:50
  • 2
    sc.hadoopConfiguration does not take parameters in the second example as well, so parentheses () should be omitted there too :)
    – hooke
    Apr 23 '19 at 12:37

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